Aiiso Yufeng Li Family Department of Chemical and Nano Engineering, University of California, San Diego, La Jolla, CA, USA.
Department of Mechanical and Aerospace Engineering, University of California, San Diego, La Jolla, CA, USA.
Sci Robot. 2024 Jun 12;9(91):eadk3925. doi: 10.1126/scirobotics.adk3925.
Electrotactile stimulus is a form of sensory substitution in which an electrical signal is perceived as a mechanical sensation. The electrotactile effect could, in principle, recapitulate a range of tactile experience by selective activation of nerve endings. However, the method has been plagued by inconsistency, galvanic reactions, pain and desensitization, and unwanted stimulation of nontactile nerves. Here, we describe how a soft conductive block copolymer, a stretchable layout, and concentric electrodes, along with psychophysical thresholding, can circumvent these shortcomings. These purpose-designed materials, device layouts, and calibration techniques make it possible to generate accurate and reproducible sensations across a cohort of 10 human participants and to do so at ultralow currents (≥6 microamperes) without pain or desensitization. This material, form factor, and psychophysical approach could be useful for haptic devices and as a tool for activation of the peripheral nervous system.
电触觉刺激是一种感觉替代形式,其中电信号被感知为机械感觉。电触觉效应原则上可以通过选择性激活神经末梢来再现一系列触觉体验。然而,该方法一直受到不一致性、电流刺激、疼痛和脱敏以及对非触觉神经的不适当刺激的困扰。在这里,我们描述了软导电嵌段共聚物、可拉伸布局和同心电极以及心理物理阈值如何克服这些缺点。这些专门设计的材料、器件布局和校准技术使得在 10 名人类参与者的队列中产生准确和可重复的感觉成为可能,并且可以在超低电流(≥6 微安)下实现,而不会引起疼痛或脱敏。这种材料、形式因素和心理物理方法可用于触觉设备,并且是激活周围神经系统的工具。